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Training Affective Computer Vision Models by Crowdsourcing Soft-Target Labels.

Peter WashingtonHaik KalantarianJack KentArman HusicAaron KlineEmilie LeblancCathy HouCezmi MutluKaitlyn DunlapYordan PenevNate StockhamBrianna ChrismanKelley PaskovJae-Yoon JungCatalin VossNick HaberDennis P Wall
Published in: Cognitive computation (2021)
For many applications of affective computing, reporting an emotion probability distribution that accounts for the subjectivity of human interpretation can be more useful than an absolute label. Crowdsourcing, including a sufficient filtering mechanism for selecting reliable crowd workers, is a feasible solution for acquiring soft-target labels.
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